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Combinatorial pretreatment and fermentation optimization enabled a record yield on lignin bioconversion

Overview of attention for article published in Biotechnology for Biofuels and Bioproducts, January 2018
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Title
Combinatorial pretreatment and fermentation optimization enabled a record yield on lignin bioconversion
Published in
Biotechnology for Biofuels and Bioproducts, January 2018
DOI 10.1186/s13068-018-1021-3
Pubmed ID
Authors

Zhi-Hua Liu, Shangxian Xie, Furong Lin, Mingjie Jin, Joshua S. Yuan

Abstract

Lignin valorization has recently been considered to be an essential process for sustainable and cost-effective biorefineries. Lignin represents a potential new feedstock for value-added products. Oleaginous bacteria such as Rhodococcus opacus can produce intracellular lipids from biodegradation of aromatic substrates. These lipids can be used for biofuel production, which can potentially replace petroleum-derived chemicals. However, the low reactivity of lignin produced from pretreatment and the underdeveloped fermentation technology hindered lignin bioconversion to lipids. In this study, combinatorial pretreatment with an optimized fermentation strategy was evaluated to improve lignin valorization into lipids using R. opacus PD630. As opposed to single pretreatment, combinatorial pretreatment produced a 12.8-75.6% higher lipid concentration in fermentation using lignin as the carbon source. Gas chromatography-mass spectrometry analysis showed that combinatorial pretreatment released more aromatic monomers, which could be more readily utilized by lignin-degrading strains. Three detoxification strategies were used to remove potential inhibitors produced from pretreatment. After heating detoxification of the lignin stream, the lipid concentration further increased by 2.9-9.7%. Different fermentation strategies were evaluated in scale-up lipid fermentation using a 2.0-l fermenter. With laccase treatment of the lignin stream produced from combinatorial pretreatment, the highest cell dry weight and lipid concentration were 10.1 and 1.83 g/l, respectively, in fed-batch fermentation, with a total soluble substrate concentration of 40 g/l. The improvement of the lipid fermentation performance may have resulted from lignin depolymerization by the combinatorial pretreatment and laccase treatment, reduced inhibition effects by fed-batch fermentation, adequate oxygen supply, and an accurate pH control in the fermenter. Overall, these results demonstrate that combinatorial pretreatment, together with fermentation optimization, favorably improves lipid production using lignin as the carbon source. Combinatorial pretreatment integrated with fed-batch fermentation was an effective strategy to improve the bioconversion of lignin into lipids, thus facilitating lignin valorization in biorefineries.

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Mendeley readers

The data shown below were compiled from readership statistics for 87 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 87 100%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 13 15%
Researcher 12 14%
Student > Master 12 14%
Student > Doctoral Student 7 8%
Professor > Associate Professor 4 5%
Other 11 13%
Unknown 28 32%
Readers by discipline Count As %
Biochemistry, Genetics and Molecular Biology 17 20%
Engineering 7 8%
Chemical Engineering 7 8%
Agricultural and Biological Sciences 6 7%
Environmental Science 3 3%
Other 14 16%
Unknown 33 38%